Maximal spreading of impacting viscoelastic droplets

Fuente: arXiv
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Main Authors: Avni, Orr, Wang, Dongyue, Ravisankar, Mithun, Zenit, Roberto
Format: Preprint
Published: 2026
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author Avni, Orr
Wang, Dongyue
Ravisankar, Mithun
Zenit, Roberto
author_facet Avni, Orr
Wang, Dongyue
Ravisankar, Mithun
Zenit, Roberto
contents Droplet impact and spreading on solid substrates are well understood for Newtonian fluids, yet how viscoelasticity alone modifies the maximal spreading remains unclear. To identify the mechanisms governing the spreading dynamics, we conducted impact experiments and measured the maximal spreading diameter to quantify how fluid elasticity modifies the maximal spreading of impacting droplets. Experiments were performed using fluids within a narrow range of viscosity and surface tension, but with varying relaxation times. For a wide range of conditions, viscoelastic droplets follow a similar behavior as Newtonian ones; however, their maximal spreading diameter is significantly reduced compared with the Newtonian behavior when the Deborah number is of order unity. These observations are rationalized by incorporating the viscoelastic effects into a classical energy balance model. The scaling argument obtained from this model explains the reported reduction in maximal spreading and identifies the range of fluid properties for which the strongest viscoelastic effects emerge.
format Preprint
id arxiv_https___arxiv_org_abs_2601_15246
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Maximal spreading of impacting viscoelastic droplets
Avni, Orr
Wang, Dongyue
Ravisankar, Mithun
Zenit, Roberto
Fluid Dynamics
Droplet impact and spreading on solid substrates are well understood for Newtonian fluids, yet how viscoelasticity alone modifies the maximal spreading remains unclear. To identify the mechanisms governing the spreading dynamics, we conducted impact experiments and measured the maximal spreading diameter to quantify how fluid elasticity modifies the maximal spreading of impacting droplets. Experiments were performed using fluids within a narrow range of viscosity and surface tension, but with varying relaxation times. For a wide range of conditions, viscoelastic droplets follow a similar behavior as Newtonian ones; however, their maximal spreading diameter is significantly reduced compared with the Newtonian behavior when the Deborah number is of order unity. These observations are rationalized by incorporating the viscoelastic effects into a classical energy balance model. The scaling argument obtained from this model explains the reported reduction in maximal spreading and identifies the range of fluid properties for which the strongest viscoelastic effects emerge.
title Maximal spreading of impacting viscoelastic droplets
topic Fluid Dynamics
url https://arxiv.org/abs/2601.15246